Generalized transfer matrix theory on electronic transport through graphene waveguide
arXiv:0811.3336 · doi:10.1103/PhysRevB.79.155429
Abstract
In the effective mass approximation, electronic property in graphene can be characterized by the relativistic Dirac equation. Within such a continuum model we investigate the electronic transport through graphene waveguides formed by connecting multiple segments of armchair-edged graphene nanoribbons of different widths. By using appropriate wavefunction connection conditions at the junction interfaces, we generalize the conventional transfer matrix approach to formulate the linear conductance of the graphene waveguide in terms of the structure parameters and the incident electron energy. In comparison with the tight-binding calculation, we find that the generalized transfer matrix method works well in calculating the conductance spectrum of a graphene waveguide even with a complicated structure and relatively large size. The calculated conductance spectrum indicates that the graphene waveguide exhibits a well-defined insulating band around the Dirac point, even though all the constituent ribbon segments are gapless. We attribute the occurrence of the insulating band to the antiresonance effect which is intimately associated with the edge states localized at the shoulder regions of the junctions. Furthermore, such an insulating band can be sensitively shifted by a gate voltage, which suggests a device application of the graphene waveguide as an electric nanoswitch.
11 pages, 5 figures
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- High-performance solution of the transport problem in a graphene armchair structure with a generic potential
- Fundamental transfer matrix and dynamical formulation of stationary scattering in two and three dimensions
- Oblique and asymmetric Klein tunneling across smooth NP junctions or NPN junctions in 8-Pmmn borophene
- Transfer-matrix formulation of the scattering of electromagnetic waves and broadband invisibility in three dimensions
- A rigorous proof of non-existence of edge state in the semi-infinite armchair edged graphene
- Electronic transport of a large scale system studied by renormalized transfer matrix method: application to armchair graphene nanoribbons between quantum wires
- Scattering of TE and TM waves and quantum dynamics generated by non-Hermitian Hamiltonians
- Transport properties through alternating borophene and graphene superlattices
- Propagating-wave approximation in two-dimensional potential scattering